US5656707A - Highly cross-linked polymeric supports - Google Patents

Highly cross-linked polymeric supports Download PDF

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US5656707A
US5656707A US08/491,474 US49147495A US5656707A US 5656707 A US5656707 A US 5656707A US 49147495 A US49147495 A US 49147495A US 5656707 A US5656707 A US 5656707A
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polymer
crosslinker
acrylate
group
polymerization
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Maria Kempe
George Barany
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University of Minnesota
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Assigned to NATIONAL INSTITUTES OF HEALTH, THE reassignment NATIONAL INSTITUTES OF HEALTH, THE CONFIRMATORY LICENSE (SEE DOCUMENT FOR DETAILS). Assignors: MINNESOTA, THE UNIVERSITY OF
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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K1/00General methods for the preparation of peptides, i.e. processes for the organic chemical preparation of peptides or proteins of any length
    • C07K1/04General methods for the preparation of peptides, i.e. processes for the organic chemical preparation of peptides or proteins of any length on carriers
    • C07K1/042General methods for the preparation of peptides, i.e. processes for the organic chemical preparation of peptides or proteins of any length on carriers characterised by the nature of the carrier
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F20/00Homopolymers and copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and only one being terminated by only one carboxyl radical or a salt, anhydride, ester, amide, imide or nitrile thereof
    • C08F20/02Monocarboxylic acids having less than ten carbon atoms, Derivatives thereof
    • C08F20/10Esters
    • C08F20/26Esters containing oxygen in addition to the carboxy oxygen
    • C08F20/28Esters containing oxygen in addition to the carboxy oxygen containing no aromatic rings in the alcohol moiety
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F22/00Homopolymers and copolymers of compounds having one or more unsaturated aliphatic radicals each having only one carbon-to-carbon double bond, and at least one being terminated by a carboxyl radical and containing at least one other carboxyl radical in the molecule; Salts, anhydrides, esters, amides, imides or nitriles thereof
    • C08F22/10Esters
    • C08F22/1006Esters of polyhydric alcohols or polyhydric phenols, e.g. ethylene glycol dimethacrylate
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F290/00Macromolecular compounds obtained by polymerising monomers on to polymers modified by introduction of aliphatic unsaturated end or side groups
    • C08F290/02Macromolecular compounds obtained by polymerising monomers on to polymers modified by introduction of aliphatic unsaturated end or side groups on to polymers modified by introduction of unsaturated end groups
    • C08F290/06Polymers provided for in subclass C08G
    • C08F290/062Polyethers

Definitions

  • the present invention was made with government support under the National Institutes of Health Grant Nos. GM 42722 and 51628. The government has certain rights in the invention.
  • crosslinker e.g., typically less than about 10 mole-% and usually only about 1-2 mole-%).
  • the polymers of the present invention are prepared from multifunctional oxyethylene-containing (meth)acrylate crosslinkers, and optional secondary crosslinkers, with an olefin-containing monomer, preferably a functionalized olefin-containing monomer.
  • the multifunctional oxyethylene-containing meth(acrylate) crosslinkers used in making the highly crosslinked polymers of the present invention are represented by the following formula (I): ##STR2## wherein R 1 , R 2 , and R 3 are each independently hydrogen or a methyl group; R 4 is hydrogen or an organic group or substituent that can interact in the polymerization and/or crosslinking process or is nonreactive under the conditions of the polymerization and/or crosslinking process; and each of l, m, and n is no greater than about 100 (preferably each of l, m, and n is 1-30, and more preferably l+m+n total 5-25).
  • the crosslinkers are polymerized with one or more olefinic monomers optionally functionalized
  • FIG. 1 HPLC chromatogram evaluating crude ACP(65-74) amide preparation described in Example 10.
  • a VYDAC C 18 reversed-phase column (4.6 ⁇ 250 mm) was eluted at a flow-rate of 1 ml/minute with a linear gradient over 30 minutes from 19:1 to 3:1 of 0.1% TFA in water and 0.1% TFA in acetonitrile. Peptides were detected spectrophotometrically at 220 nm.
  • FIG. 2 HPLC chromatogram evaluating crude ACP(65-74) amide preparation described in Example 11.
  • a VYDAC C 18 reversed-phase column (4.6 ⁇ 250 mm) was eluted at a flow-rate of 1 ml/minute with a linear gradient over 30 minutes from 19:1 to 3:1 of 0.1% TFA in water and 0.1% TFA in acetonitrile.
  • Peptides were detected spectrophotometrically at 220 nm.
  • FIG. 3 HPLC chromatogram evaluating crude (Ala) 10 -Val amide preparation described in Example 12.
  • a VYDAC C 18 reversed-phase column (4.6 ⁇ 250 mm) was eluted at a flow-rate of 1 ml/minute with a linear gradient over 30 minutes from 1:0 to 6:4 of 0.1% TFA in water and 0.1% TFA in acetonitrile.
  • Peptides were detected spectrophotometrically at 220 nm.
  • the present invention provides highly crosslinked polymers suitable for use in a wide range of applications.
  • the crosslinked polymers of the present invention can be used as solid supports in a variety of solid-phase synthetic applications, as stationary phases in chromatography, and as matrices for immobilization of macromolecules.
  • the polymers of the present invention can be prepared in a wide range of molecular weights. They can also have a wide range of pore sizes, porosities, surface areas, etc., depending on the desired end use. Although they can also be prepared with a wide range of crosslinking, they are preferably highly crosslinked (i.e., prepared using at least about 10 mole-% total crosslinker).
  • the polymers of the present invention are highly crosslinked, they can also possess good swelling properties in various solvents (e.g., dimethylformamide, methylene chloride, acetonitrile, tetrahydrofuran, and water).
  • the polymers of the present invention increase in volume by at least about 1.5 times, and more preferably at least about 3 times, in a suitable solvent such as methylene chloride or dimethylformamide.
  • a suitable solvent such as methylene chloride or dimethylformamide.
  • good swelling properties result from low levels of crosslinking.
  • the swelling capability of the polymers of the present invention is unexpected.
  • the polymers of the present invention have generally good compatibility with peptides. That is, they have the same polarity, e.g., hydrophobicity/hydrophilicity, as the peptides, which is advantageous in solid-phase peptide synthesis.
  • the polymers of the present invention are prepared from multifunctional oxyethylene-containing (meth)acrylate crosslinkers, and optional secondary olefin-containing crosslinkers, with an olefin-containing monomer (i.e., oleic monomer), preferably a functionalized olefin-containing monomer, and more preferably an amine-functionalized olefin-containing monomer.
  • an olefin-containing monomer i.e., oleic monomer
  • a functionalized olefin-containing monomer preferably an amine-functionalized olefin-containing monomer.
  • the multifunctional oxyethylene-containing meth(acrylate) crosslinkers used in making the highly crosslinked polymers of the present invention are represented by the following formula (I): ##STR3## wherein R 1 , R 2 , and R 3 are each independently hydrogen or a methyl group; R 4 is hydrogen or an organic group or substituent that can interact in the polymerization and/or crosslinking process or is nonreactive under the conditions of the polymerization and/or crosslinking process; and each of l, m, and n is no greater than about 100 (preferably each of l, m, and n is 1-30, and more preferably l+m+n total 5-25). It should be understood that each of l, m, and n can be the same or different.
  • This multifunctional acrylate or methacrylate crosslinker containing one or more oxyethylene groups contributes to the unique properties of the polymers of the present invention.
  • an organic group or substituent is nonreactive under the conditions of the polymerization and/or crosslinking process if it does not undergo chemical change or transformation during the reaction and does not prevent the reaction. By this it is meant that the group is selected such that the reactants can react in the manner described.
  • An organic group or substituent interacts in the polymerization and/or crosslinking process if it reacts with the olefinic monomer or other crosslinker molecules to cause chain growth or crosslinking.
  • Suitable R 4 groups include substituents such as hydroxyl groups, carboxyl groups, amide groups, ester groups, halogens, amine groups, and the like, as well as alkyl groups, aryl groups, alkaryl or aralkyl groups, alkenyl groups, alkynyl groups, and the like, which can optionally include nonperoxidic oxygen, sulfur, or nitrogen atoms, and be unsubstituted or substituted with the substituents listed above.
  • R 4 is hydrogen, an oxyethylene-containing methacrylate group, an alkyl group, or a hydroxyalkyl group.
  • R 4 is hydrogen, --CH 2 --(O--CH 2 --CH 2 ) x --O--C(O)--C(R 5 ) ⁇ CH 2 wherein R 5 is hydrogen or methyl group and x is no greater than about 100 (preferably 1-30), a (C 1 -C 4 )alkyl group, a hydroxy(C 1 -C 4 )alkyl group.
  • the multifunctional oxyethylene-containing (meth)acrylate crosslinkers can be tri- or tetra-functional acrylates or methacrylates.
  • the polymers of the present invention are prepared using a high level of crosslinker (i.e., at least about 10 mole-%, based on the total number of moles of reactants).
  • a high level of crosslinker i.e., at least about 10 mole-%, based on the total number of moles of reactants.
  • the polymers of the present invention are prepared using at least about 15 mole-% total crosslinker, more preferably at least about 25 mole-%, and most preferably at least about 50 mole-% total crosslinker.
  • the total amount of crosslinker can be as high as 98 mole-% and still produce a polymer with good swelling properties.
  • the total amount of crosslinker includes the multifunctional oxyethylene-containing (meth)acrylate crosslinkers (I) and any optional secondary olefin-containing crosslinkers.
  • the secondary olefin-containing crosslinkers include any crosslinkers typically used in crosslinking polymers made from olefinic and/or (meth)acrylate monomers.
  • crosslinkers are of the formula H 2 C ⁇ CH--R 6 --HC ⁇ CH 2 or H 2 C ⁇ C(CH 3 )--R 6 --(H 3 C)C ⁇ CH 2 , wherein R 6 is a divalent organic group containing aromatic and/or aliphatic moieties and optional functionalities such as amide groups, carboxyl groups, nonperoxidic oxygen atoms, and the like.
  • secondary crosslinkers include, but are not limited to, divinylbenzene, ethylene glycol dimethacrylate [H 2 C ⁇ C(CH 3 )--C(O)--O--CH 2 --CH 2 --O--C(O)--(CH 3 )C ⁇ CH 2 ], poly(ethylene glycol-400)-dimethacrylate [H 2 C ⁇ C(CH 3 )--C(O)--(O--CH 2 --CH 2 ) 9 --O--C(O)--(CH 3 )C ⁇ CH 2 ], N,N'-methylenediacrylamide [H 2 C ⁇ CH--C(O)--NH--CH 2 NH--C(O)--CH ⁇ CH 2 ], N,N'-1,4-phenylenediacrylamide [H 2 C ⁇ CH--C(O)--NH--C 6 H 4 --NH--C(O)--CH ⁇ CH 2 ], 3,5-bis(acryloylamido)benzo
  • the crosslinkers are copolymerized with one or more olefinic monomers optionally functionalized with amino groups, carboxyl groups, hydroxyl groups, etc.
  • the functional groups serve as starting points for substituents that will be coupled to the polymeric support.
  • These functional groups can be reactive with an organic group that is to be attached to the solid support or it can be modified to be reactive with that group, as through the use of linkers or handles.
  • the functional groups can also impart various desired properties to the polymer, depending on the use of the polymers. For example, if used in ion exchange chromatography, the polymers of the present invention should include charged groups. If used as supports for peptide synthesis, the polymers of the present invention can include amino groups.
  • the polymers of the present invention are made using olefinic monomers containing amino functional groups.
  • Suitable olefins include, for example, vinyl carboxylic acids such as acrylic acid, methacrylic acid, itaconic acid, and 4-vinylbenzoic acid; vinyl esters such as vinyl acetate, vinyl propionate, and vinyl pivalate; allyl esters such as allyl acetate; allyl amines such as allyl amine and allylethylamine; acrylic esters such as methyl acrylate, cyclohexylacrylate, benzylacrylate, isobornyl acrylate, hydroxybutyl acrylate, glycidyl acrylate, and 2-aminoethyl acrylate; methacrylic esters such as methyl methacrylate, butyl methacrylate, cyclohexyl methacrylate, benzyl methacrylate, ethyl methacrylate, glycidyl methacrylate, and 2-aminoethyl methacrylate; vinyl acid hal
  • the polymer of the present invention can be made using optional ingredients such as free-radical initiators (e.g., thermolytic and/or photolytic initiators).
  • Free-radical initiators useful in the present invention include those normally suitable for free-radical polymerization of acrylate monomers. These species include azo compounds, tertiary amines, as well as organic peroxides, such as benzoyl peroxide and lauryl peroxide, and other initiators. Examples of azo compounds include 2,2'-azobis(2-methylbutyronitrile), 2,2'-azobis(2-methylpropionitrile), and 2,2'-azobis(isobutyronitrile).
  • VAZO 67 VAZO 64 and VAZO 52 initiators supplied by E.I. duPont de Nemours & Co. Typically about 0.1-2.0 wt-% is used based upon the total monomer weight.
  • the polymer of the present invention preferably in the form of particles or beads, can be produced by various methods, including bulk polymerization followed by grinding and sieving, or by emulsion polymerization, dispersion polymerization, suspension polymerization, seeded polymerization, or precipitation polymerization.
  • emulsion polymerization dispersion polymerization
  • suspension polymerization seeded polymerization
  • precipitation polymerization Such techniques are described in R. Arshady, J. Microencapsulation, 5, 101 (1988), R. Arshady et al., J. Chem. Soc., Perkins Trans, I, 529-537 (1981), P. Karda et al., Int. J. Pept. Prot. Res., 38, 385-391 (1991), and P. Reinholdsson et al., Angew, Makromol. Chem., 192, 113-132 (1991).
  • the process is advantageous particularly because functionalized crosslinked polymers can be made in essentially one step of reacting a functionalized monomer and a crosslinker containing oxyethylene functionality.
  • Other functionalized crosslinked polymers are known containing oxyethylene functionality, however, they are generally grafted polymers prepared from polyethylene glycol.
  • the bulk one-step process involves combining one or more types of olefinic monomers with a multifunctional oxyethylene-containing (meth)acrylate crosslinker, optionally with a secondary olefin-containing crosslinker and a free-radical initiator, in a suitable solvent.
  • the solvent is one in which the reactants will substantially dissolve, preferably at ambient temperature (i.e., 25°-30° C.).
  • substantially dissolving it is meant that the reactants do not have to be completely soluble in the solvent of choice, but they should be sufficiently soluble such that there is enough in solution at the temperature at which the polymerization occurs to effect the polymerization.
  • Suitable solvents include cyclohexanol and higher alcohols, toluene, chloroform, methylene chloride, acetonitrile, tetrahydrofuran, carbon tetrachloride, benzene, and the like.
  • the reaction is typically carded out in a substantially oxygen-free atmosphere (e.g., in the presence of argon or nitrogen).
  • the reaction mixture can be exposed to a source of energy, such as ultraviolet radiation and/or an elevated temperature, for a time sufficient to effect the polymerization.
  • a source of energy such as ultraviolet radiation and/or an elevated temperature
  • the reaction is carried out at a temperature of about -30°-120° C. (more preferably about 50°-90° C.) and exposed to radiation in the wavelength of about 350-370 nm.
  • the polymer can then be crushed and sieved to the desired particle size.
  • any of three generally known suspension polymerization methods can be used.
  • One of these methods uses conventional suspension agents with optional anionic surfactants, another (“limited coalescence method”) uses a negatively charged colloidal silica suspending agent and a water-soluble promoter, and a third (“surfactant method”) uses a surfactant as a suspending agent, to produce smaller particle sizes.
  • a variety of solvents can be used, such as water or organic solvents such as cyclohexanol. Generally, the choice of solvent, as well as reaction conditions (e.g., temperature), can affect the properties of the polymer (e.g., porosity, pore size, and surface area).
  • suspension stabilizers useful in preparing the particles of the present invention are those conventionally used in suspension polymerization processes.
  • the terms "suspension stabilizers,” “suspending agents,” and “suspension agents” are used interchangeably herein. They may be minimally water-soluble inorganic salts such as those selected from the group consisting of tribasic calcium phosphate, calcium carbonate, calcium sulfate, barium sulfate, barium phosphate, magnesium carbonate, and mixtures thereof.
  • Preferred inorganic suspending agents include those selected from the group consisting of barium sulfate, tribasic calcium phosphate, and mixtures thereof.
  • Water-soluble organic suspending agents such as those selected from the group consisting of polyvinyl alcohol, poly-N-vinylpyrrolidone, polyacrylic acid, polyacrylamide, and hydroxyalkyl cellulose, can also be used.
  • Surfactants can also be used in this method.
  • anionic surfactants such as sodium lauryl sulfate and sodium dioctyl sulfosuccinate, are used.
  • surfactant or emulsifying agent alone is used as the suspending agent.
  • Surfactants or emulsifiers useful in this "surfactant method" are typically anionic surfactants, cationic surfactants, or nonionic surfactants.
  • Anionic surfactants useful in the present invention include, but are not limited to, the group consisting of alcohol sulfates, alkylaryl sulfonates, ethoxylated alkyl phenol sulfates, ethoxylated alkyl phenol sulfonates and mixtures thereof.
  • Cationic surfactants include, but are not limited to, the group consisting of quaternary ammonium salts wherein at least one higher molecular weight group and two or three lower molecular weight groups are linked to a common nitrogen atom to produce a cation, and wherein the electrically balancing anion is selected from the group consisting of a halide (bromide, chloride, etc.), acetate, nitrite, and lower alkyosulfonate (methosulfate, ethyosulfate, etc.), and mixtures thereof.
  • a halide bromide, chloride, etc.
  • acetate, nitrite, and lower alkyosulfonate methosulfate, ethyosulfate, etc.
  • Nonionic surfactants useful in the present invention include, but are not limited to, the group consisting of ethoxylated alkyl phenols, ethoxylated fatty acids, and ethoxylated fatty alcohols and mixtures thereof. A combination of more than one surfactant or emulsifier is also found to be useful in the invention.
  • the polymeric particles of the present invention can also be produced by the limited coalescence method.
  • a reaction mixture of monomers, a negatively charged colloidal silica suspending agent, and a free-radical initiator are stirred in water under high-speed agitation conditions to break the monomer phase into small droplets.
  • the stirred suspension is heated under nitrogen while polymerization takes place and the desired particles are formed.
  • the particles are collected and washed with water, then dried.
  • the colloidal silica particles have dimensions of about 1-100 nanometers and preferably of about 5-70 nanometers. The size and concentration of these particles controls the size of the polymer particles. Smaller silica particles and higher silica concentration provides smaller bead diameters.
  • Hydrophilic colloidal silica useful as the suspending agent is available commercially, for example, under the tradenames and in the particle sizes as follows: LUDOX TM (20 nm); LUDOX HS (12 nm); LUDOX SM (7 nm); and LUDOX AM (12 nm); all supplied by E.I. duPont de Nemours Company; and NALCO 1060 (60 nm) supplied by Nalco Chemical Company, Oakbrook, Ill.
  • the negatively charged colloidal silica suspending agent is preferably used with a water-soluble "promoter" that affects the hydrophobic-hydrophilic balance of the colloidal particles.
  • the components of the promoter are chosen to ensure good water solubility and sufficient complexing with colloidal silica. More specifically, the promoter forms a complex with the suspending agent which is less hydrophilic than the colloidal particles themselves.
  • the promoter drives the particles of the colloid to the liquid-liquid interface of the oleophilic or hydrophobic droplets and the aqueous medium.
  • the complex is compatible with the hydrophobic or oleophilic monomers dispersed in the aqueous reaction medium.
  • the complex coats the monomer droplets and inhibits their coalescence.
  • a promoter is used based on the weight of the aqueous phase.
  • the water-soluble promoter is preferably a low-molecular weight (i.e., about 200 to about 1000 number average molecular weight) organic condensation polymer of a lower alkylene dicarboxylic acid and an alkanol amine (preferably a mono- or dialkanol amine).
  • the dicarboxylic acid can have an alkylene chain having about 2-6 carbon atoms in length.
  • the preferred diacid of this class is adipic acid.
  • the alkanol amine preferably is a lower alkanol amine of which the alkanol groups contain about 1-4 carbon atoms, selected from the group consisting of diethanolamine, 2-amino-2-ethyl-1,3-propanediol, methyl amino ethanol, N-methyldiethanolamine, N-propyldiethanolamine and N-butyldiethanolamine.
  • adipic acid these alkanol amines form the polyesters (by which term we also include polyesteramides), such as poly(diethanolamine adipate) and poly(methylamino ethanol adipate).
  • the water-soluble promoter is a condensation polymer of adipic acid and diethanolamine.
  • an inhibitor i.e., a water-soluble substance to prevent the emulsion or solution polymerization of the monomers in the aqueous phase.
  • inhibitors include, but are not limited to, those selected from the group consisting of sodium nitrite, copper salts, methylene blue, potassium dichromate, phenols, and mixtures thereof.
  • a preferred example of such a water-soluble polymerization inhibitor is potassium dichromate.
  • about 0.01-0.1 percent by weight of an inhibitor is used based on the total weight of the aqueous phase.
  • the polymer of the present invention can be used as a support for a variety of applications. These include, for example, solid-phase synthesis, chromatography (e.g., affinity chromatography, size-exclusion chromatography, ion-exchange chromatography, ion-pair chromatography, normal-phase chromatography, reversed-phase chromatography, and hydrophobic interaction chromatography), and immobilization of macromolecules (e.g., enzymes and antibodies) to increase their stability.
  • the polymeric supports of the present invention have several desirable characteristics for these applications, particularly for solid-phase synthesis: they swell in a variety of solvents; they are stable under the conditions used in most solid-phase syntheses; and they are stable at the pressures experienced in column reactors.
  • Solid-phase peptide synthesis typically begins with covalent attachment of a first amino acid (e.g., an "internal reference” amino acid) to the solid support.
  • a first amino acid e.g., an "internal reference” amino acid
  • the solid support was prepared with amino-functional monomers, the carboxyl group of an N.sup. ⁇ -protected amino acid is covalently linked to a handle moiety which is attached to the amino group on the polymer.
  • a "handle” is defined as a bifunctional spacer which serves to attach the initial amino acid residue to the polymeric support.
  • One end of the handle incorporates a smoothly cleavable protecting group and the other end of the handle couples to the functionalized solid support.
  • Handles which can be used with the present polymers in solid-phase peptide synthesis include, for example acid-labile p-alkoxybenzyl (PAB) handles, photolabile o-nitrobenzyl ester handles, and handles such as those described by Albericio et al., J. Org. Chem., 55, 3730-3743 (1990) and references cited therein, and in U.S. Patent Nos. 5,117,009 (Barany) and 5,196,566 (Barany et al.).
  • the appropriate handles are coupled quantitatively in a single step onto the amino-functionalized supports to provide a general starting point of well-defined structures for peptide chain assembly.
  • the handle protecting group is removed and the C-terminal residue of the N.sup. ⁇ -protected first amino acid is coupled quantitatively to the handle.
  • the synthesis cycle generally consists of deprotection of the N.sup. ⁇ -amino group of the amino acid or peptide on the resin, washing, and, if necessary, a neutralization step, followed by reaction with a carboxyl-activated form of the next N.sup. ⁇ -protected amino acid.
  • the cycle is repeated to form the peptide or protein of interest.
  • Solid-phase peptide synthesis methods using functionalized insoluble supports are well known. Merrifield, J. Am.
  • an internal reference amino acid (Fmoc-Nle-OH) was coupled to the free amino groups on the resin particles, followed by deprotection and coupling of the handle Fmoc-5-(-4-aminomethyl-3,5-dimethoxyphenoxy)valeric acid (PAL).
  • the challenging sequence 65-74 of acyl carrier protein (ACP) was synthesized successfully on the support by Fmoc-chemistry, using both a conventional solvent (DMF, FIG. 1) and a non-conventional solvent (acetonitrile, FIG. 2) as the reaction media.
  • DMF conventional solvent
  • acetonitrile FIG. 2
  • H-(Ala) 10 -Val amide (FIG. 3) has been synthesized with results comparable to those obtained on commercially available PEG-PS.
  • the solution in a KIMAX Screw Cap Culture Tube, was sonicated and then purged with a stream of nitrogen for 5 minutes. The tube was sealed and placed in a RAYONET Photochemical Reactor overnight. The polymerization was initiated by a combination of photolytic (350 nm) and thermolytic (50° C.) dissociation of 2,2'-azobis(2-methylpropionitrile). The resulting polymer was ground in a mortar and wet-sieved with water through 106 ⁇ m and 125 ⁇ m sieves. The 106-125 ⁇ m fraction was collected and washed with water (acidified with trifluoroacetic acid "TFA" to pH 1-2), and methanol on a sintered glass funnel.
  • TFA trifluoroacetic acid
  • the resin (2.66 g) was dried in vacuo overnight. A portion of the resin was derivatized as described in Examples 8 and 9 with an internal reference and then a handle. The loading of Fmoc-PAL on the resulting resin was 0.25 mmol per gram of resin.
  • the solution was sonicated, purged with a stream of nitrogen for 5 minutes and then polymerized and processed as described in Example 1 to give 1.88 grams of resin.
  • a portion of the resin was derivatized as described in Examples 8 and 9.
  • the loading of Fmoc-PAL on the resulting resin was 0.11 mmol per gram of resin.
  • trimethylolpropane ethoxylate 14/3 EO/OH triacrylate/poly(ethylene glycol) ethyl ether methacrylate/2-aminoethyl methacrylate-copolymer: 2-aminoethyl methacrylate.HCl (0.73 g, 3.6 mmol), poly(ethylene glycol) ethyl ether methacrylate (0.74 g, 16 mmol), trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate (7.30 g, 8.0 mmol), and 2,2'-azobis(2-methylpropionitrile) (0.1 g, 0.6 mmol) were dissolved in 20 ml of cyclohexanol.
  • the solution was sonicated, purged with a stream of nitrogen for 5 minutes, and then polymerized and processed as described in Example 1 to give 1.84 gram of resin.
  • the resin was derivatized as described in Examples 8 and 9.
  • the loading of Fmoc-PAL on the resulting resin was 0.27 mmol per gram of resin.
  • Example 2 The solution was sonicated, purged with a stream of nitrogen for 5 minutes, and then polymerized and processed as described in Example 1. A portion of the resin was derivatized as described in Examples 8 and 9. The loading of Fmoc-PAL on the resulting resin was 0.20 mmol per gram.
  • Fmoc-Nle-OH Fmoc-norleucine; internal reference amino acid
  • Fmoc-Nle-OH 255 mg, 0.72 mmol, obtained from Chem-Index International, Wood Dale, Ill.
  • DMF 2 ml
  • N,N'-diisopropylcarbodiimide 91 mg, 0.72 mmol
  • 1-hydroxy-7-azabenzotriazole 98 mg, 0.72 mmol
  • the resin was washed with DMF (5 ⁇ 6 ml) and methylene chloride (5 ⁇ 6 ml).
  • the Fmoc-group was removed from the Fmoc-Nle-resin by treatment with piperidine-DMF (1:4, v/v) for 15+25 min, and then again washed with DMF (5 ⁇ 6 ml) and methylene chloride (5 ⁇ 6 ml).
  • Fmoc-PAL-OH [Fmoc-5-(4-aminomethyl-3,5-dimethoxyphenoxy)valeric acid] to Nle-functionalized resin: Fmoc-PAL-OH (354 mg, 0.72 mmol, Millipore, Bedford, Mass.) in DMF (2 ml), N,N'-diisopropylcarbodiimide (91 mg, 0.72 mmol) in DMF (0.5 ml) and 1-hydroxy-7-azabenzotriazole (HOAt) (98 mg, 0.72 mmol) in DMF (0.5 ml) were added to 0.6 g of Nle-resin (product of Example 8) and reacted at 25° C. overnight. The resin was washed with DMF (5 ⁇ 6 ml) and methylene chloride (5 ⁇ 6 ml).
  • acyl carrier protein (ACP) (65-74) amide (H-Val-Gln-Ala-Ala-Ile-Asp-Tyr-Ile-Asn-Gly-NH 2 ) on PAL-Nle-functionalized resin: the synthesis was performed intentionally under non-optimized conditions, in order to emphasize the usefulness of this new class of supports.
  • Fmoc-PAL-Nle-resin (0.1 g) prepared according to Example 4, was used.
  • Fmoc-removal was achieved with piperidine-DMF (1:4, v/v) for 5+15 minutes (i.e., this was carried out in two steps, one for 5 minutes and one for 15 minutes with the use of fresh piperidine-DMF in the second step).
  • VYDAC C 18 reversed-phase column (4.6 ⁇ 250 mm) was eluted at a flow-rate of 1 ml/minute with a linear gradient over 30 minutes from 19:1 to 3:1 of 0.1% TFA in water and 0.1% TFA in acetonitrile. Peptides were detected spectrophotometrically at 220 nm.
  • acyl carrier protein (65-74) amide (H-Val-Gln-Ala-Ala-Ile-Asp-Tyr-Ile-Asn-Gly-NH 2 ) on PAL-Nle-functionalized resin: the synthesis was performed intentionally under non-optimized conditions in a, for peptide synthesis, non-conventional reaction medium (acetonitrile), in order to emphasize the usefulness of this new class of supports.
  • Fmoc-PAL-Nle-resin (0.1 g) prepared according to Example 4, was used. Fmoc-removal was achieved with piperidine-DMF (1:4, v/v) for 5+15 minutes.
  • N.sup. ⁇ -Fmoc-amino acids 150 ⁇ mol were each in mm dissolved in acetonitrile (0.4 ml, a few drops of DMF was added if needed to dissolve the amino acid derivative), and 2 hour couplings were each initiated with 150 ⁇ mol of N,N'-diisopropylcarbodiimide dissolved in acetonitrile (0.4 ml). All washings between couplings and deprotections were performed with acetonitrile. Cleavage of the peptide was achieved with TFA-CH 2 Cl 2 (9:1, v/v) (2 ml) for 2.5 hours.
  • VYDAC Gig reversed-phase column (4.6 ⁇ 250 mm) was eluted at a flow-rate of 1 ml/minute with a linear gradient over 30 minutes from 19:1 to 3:1 of 0.1% TFA in water and 0.1% TFA in acetonitrile. Peptides were detected spectrophotometrically at 220 mm.
  • VYDAC C 18 reversed-phase column (4.6 ⁇ 250 mm) was eluted at a flow-rate of 1 ml/minute with a linear gradient over 30 minutes from 1:0 to 6:4 of 0.1% TFA in water and 0.1% TFA in acetonitrile. Peptides were detected spectrophotometrically at 220 nm.

Abstract

A polymer useful as a solid support for a variety of applications is provided. The polymer is prepared from a composition comprising at least one type of olefinic monomer and a multifunctional oxyethylene-containing meth(acrylate) crosslinker of the following formula (I): ##STR1## wherein: (a) R1, R2, and R3 are each independently hydrogen or a methyl group;
(b) R4 is hydrogen or an organic group or substituent that can interact in the polymerization and/or crosslinking process or is nonreactive under the conditions of the polymerization and/or crosslinking process; and
(c) each of l, m, and n is no greater than about 100.

Description

The present invention was made with government support under the National Institutes of Health Grant Nos. GM 42722 and 51628. The government has certain rights in the invention.
BACKGROUND OF THE INVENTION
An increasing array of organic chemical reactions, e.g., acylations, alkylations, enolate additions, Wittig reactions, reductions, oxidations, etc., that are traditionally carried out in homogeneous solution are now being adapted for solid-phase synthesis. For this reason, there is a large demand for suitable polymeric supports. For the most well-studied case, i.e., solid-phase peptide synthesis (SPPS), a wide range of materials have been developed.
Merrifield's original studies, and much subsequent work, used low crosslinked polystyrene [Merrifield, J. Am. Chem. Soc., 85, 2149-2154 (1963)]. Polystyrene, however, is limited in the number and variety of solvents that can be used. Because peptide synthesis takes place within a well-solvated gel [Sarin et al., J. Am. Chem. Soc., 102, 5463-5470 (1980)], one aspect that has been considered in the development of supports for SPPS is how well the material swells. To ensure good swelling properties, most polymeric supports used previously for this purpose have had a minimum amount of crosslinking consistent with mechanical stability. Generally, it is believed that the more crosslinking, the more mechanically stable is the polymer, but the less swellable it is. Thus, polymers used as solid supports have been developed to balance swelling with mechanical stability by using a low level of crosslinker (e.g., typically less than about 10 mole-% and usually only about 1-2 mole-%).
For SPPS, another consideration is to produce a support of the same polarity as the peptide backbone. Sheppard and coworkers developed a polyamide material known commercially as PEPSYN [Arshady et al., J. Chem. Soc., Perkin Trans. I, 529-527 (1981)]. This material, however, has not been commercially successful. Another consideration, of particular importance for continuous-flow procedures, is the mechanical stability of the support. Efforts to develop materials for this purpose resulted in PEPSYN K [Atherton et al., J. Chem. Soc., Chem. Commun., 336-337 (1981)] and polyamide-Polyhipe [Small and Sherrington, J. Chem. Sec., Chem. Commun., 1589-1591 (1989)].
Earlier work in the area of solid-phase synthesis also focused on supports that comprise polyethylene glycol (PEG) grafted onto low crosslinked polystyrene (PS). The resultant PEG-PS can be used in continuous-flow processes, has good swelling properties, and shows good compatibility with peptides [Zalipsky et al., React. Polym., 22, 243-258 (1994), and U.S. Pat. No. 5,235,028 (Barany et al.)]. Solid-phase peptide synthesis procedures and supports are summarized, for example, by G. Barany et al., Int. J. Peptide Protein Res,, 30, 705-739 (1987) and J. M. Stewart et al., Innovation and Perspectives in Solid Phase Synthesis: Peptides, Polypeptides, and Oligonucleotides. Macro-organic Reagents and Catalysts, R. Epton, Ed., SPCC UK Ltd., 1-9 (1990).
A need exists for other polymeric supports, particularly for solid-phase synthesis, but also for applications in chromatography, immobilization, etc.
SUMMARY OF THE INVENTION
The polymers of the present invention are prepared from multifunctional oxyethylene-containing (meth)acrylate crosslinkers, and optional secondary crosslinkers, with an olefin-containing monomer, preferably a functionalized olefin-containing monomer. The multifunctional oxyethylene-containing meth(acrylate) crosslinkers used in making the highly crosslinked polymers of the present invention are represented by the following formula (I): ##STR2## wherein R1, R2, and R3 are each independently hydrogen or a methyl group; R4 is hydrogen or an organic group or substituent that can interact in the polymerization and/or crosslinking process or is nonreactive under the conditions of the polymerization and/or crosslinking process; and each of l, m, and n is no greater than about 100 (preferably each of l, m, and n is 1-30, and more preferably l+m+n total 5-25). The crosslinkers are polymerized with one or more olefinic monomers optionally functionalized with amino groups, carboxyl groups, hydroxyl groups, etc. The synthesis of the polymers of the present invention is particularly advantageous because it occurs in one step.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1. HPLC chromatogram evaluating crude ACP(65-74) amide preparation described in Example 10. A VYDAC C18 reversed-phase column (4.6×250 mm) was eluted at a flow-rate of 1 ml/minute with a linear gradient over 30 minutes from 19:1 to 3:1 of 0.1% TFA in water and 0.1% TFA in acetonitrile. Peptides were detected spectrophotometrically at 220 nm.
FIG. 2. HPLC chromatogram evaluating crude ACP(65-74) amide preparation described in Example 11. A VYDAC C18 reversed-phase column (4.6×250 mm) was eluted at a flow-rate of 1 ml/minute with a linear gradient over 30 minutes from 19:1 to 3:1 of 0.1% TFA in water and 0.1% TFA in acetonitrile. Peptides were detected spectrophotometrically at 220 nm.
FIG. 3. HPLC chromatogram evaluating crude (Ala)10 -Val amide preparation described in Example 12. A VYDAC C18 reversed-phase column (4.6×250 mm) was eluted at a flow-rate of 1 ml/minute with a linear gradient over 30 minutes from 1:0 to 6:4 of 0.1% TFA in water and 0.1% TFA in acetonitrile. Peptides were detected spectrophotometrically at 220 nm.
DETAILED DESCRIPTION
The present invention provides highly crosslinked polymers suitable for use in a wide range of applications. For example, the crosslinked polymers of the present invention can be used as solid supports in a variety of solid-phase synthetic applications, as stationary phases in chromatography, and as matrices for immobilization of macromolecules. The polymers of the present invention can be prepared in a wide range of molecular weights. They can also have a wide range of pore sizes, porosities, surface areas, etc., depending on the desired end use. Although they can also be prepared with a wide range of crosslinking, they are preferably highly crosslinked (i.e., prepared using at least about 10 mole-% total crosslinker).
Although the polymers of the present invention are highly crosslinked, they can also possess good swelling properties in various solvents (e.g., dimethylformamide, methylene chloride, acetonitrile, tetrahydrofuran, and water). Preferably, the polymers of the present invention increase in volume by at least about 1.5 times, and more preferably at least about 3 times, in a suitable solvent such as methylene chloride or dimethylformamide. Typically, good swelling properties result from low levels of crosslinking. Thus, the swelling capability of the polymers of the present invention is unexpected. Also, the polymers of the present invention have generally good compatibility with peptides. That is, they have the same polarity, e.g., hydrophobicity/hydrophilicity, as the peptides, which is advantageous in solid-phase peptide synthesis.
The polymers of the present invention are prepared from multifunctional oxyethylene-containing (meth)acrylate crosslinkers, and optional secondary olefin-containing crosslinkers, with an olefin-containing monomer (i.e., oleic monomer), preferably a functionalized olefin-containing monomer, and more preferably an amine-functionalized olefin-containing monomer. The multifunctional oxyethylene-containing meth(acrylate) crosslinkers used in making the highly crosslinked polymers of the present invention are represented by the following formula (I): ##STR3## wherein R1, R2, and R3 are each independently hydrogen or a methyl group; R4 is hydrogen or an organic group or substituent that can interact in the polymerization and/or crosslinking process or is nonreactive under the conditions of the polymerization and/or crosslinking process; and each of l, m, and n is no greater than about 100 (preferably each of l, m, and n is 1-30, and more preferably l+m+n total 5-25). It should be understood that each of l, m, and n can be the same or different. This multifunctional acrylate or methacrylate crosslinker containing one or more oxyethylene groups contributes to the unique properties of the polymers of the present invention.
As used herein, an organic group or substituent is nonreactive under the conditions of the polymerization and/or crosslinking process if it does not undergo chemical change or transformation during the reaction and does not prevent the reaction. By this it is meant that the group is selected such that the reactants can react in the manner described. An organic group or substituent interacts in the polymerization and/or crosslinking process if it reacts with the olefinic monomer or other crosslinker molecules to cause chain growth or crosslinking. Suitable R4 groups include substituents such as hydroxyl groups, carboxyl groups, amide groups, ester groups, halogens, amine groups, and the like, as well as alkyl groups, aryl groups, alkaryl or aralkyl groups, alkenyl groups, alkynyl groups, and the like, which can optionally include nonperoxidic oxygen, sulfur, or nitrogen atoms, and be unsubstituted or substituted with the substituents listed above. Preferably, R4 is hydrogen, an oxyethylene-containing methacrylate group, an alkyl group, or a hydroxyalkyl group. More preferably, R4 is hydrogen, --CH2 --(O--CH2 --CH2)x --O--C(O)--C(R5)═CH2 wherein R5 is hydrogen or methyl group and x is no greater than about 100 (preferably 1-30), a (C1 -C4)alkyl group, a hydroxy(C1 -C4)alkyl group. Thus, the multifunctional oxyethylene-containing (meth)acrylate crosslinkers can be tri- or tetra-functional acrylates or methacrylates.
Typically, the polymers of the present invention are prepared using a high level of crosslinker (i.e., at least about 10 mole-%, based on the total number of moles of reactants). Preferably, the polymers of the present invention are prepared using at least about 15 mole-% total crosslinker, more preferably at least about 25 mole-%, and most preferably at least about 50 mole-% total crosslinker. The total amount of crosslinker can be as high as 98 mole-% and still produce a polymer with good swelling properties. The total amount of crosslinker includes the multifunctional oxyethylene-containing (meth)acrylate crosslinkers (I) and any optional secondary olefin-containing crosslinkers.
The secondary olefin-containing crosslinkers include any crosslinkers typically used in crosslinking polymers made from olefinic and/or (meth)acrylate monomers. Generally, such crosslinkers are of the formula H2 C═CH--R6 --HC═CH2 or H2 C═C(CH3)--R6 --(H3 C)C═CH2, wherein R6 is a divalent organic group containing aromatic and/or aliphatic moieties and optional functionalities such as amide groups, carboxyl groups, nonperoxidic oxygen atoms, and the like. Examples of such secondary crosslinkers include, but are not limited to, divinylbenzene, ethylene glycol dimethacrylate [H2 C═C(CH3)--C(O)--O--CH2 --CH2 --O--C(O)--(CH3)C═CH2 ], poly(ethylene glycol-400)-dimethacrylate [H2 C═C(CH3)--C(O)--(O--CH2 --CH2)9 --O--C(O)--(CH3)C═CH2 ], N,N'-methylenediacrylamide [H2 C═CH--C(O)--NH--CH2 NH--C(O)--CH═CH2 ], N,N'-1,4-phenylenediacrylamide [H2 C═CH--C(O)--NH--C6 H4 --NH--C(O)--CH═CH2 ], 3,5-bis(acryloylamido)benzoic acid [H2 C═CH--C(O)--NH--C6 H3 (CO2 H)--NH--C(O)--CH═CH2 ], N,O-bisacryloyl-L-phenylalaninol [H2 C═CH--C(O)--NH--CH(CH2 --C6 H5)--CH2 --O--C(O)--CH═CH2 ], pentaerythritol triacrylate [formula I wherein l, m, and n each are 0, R1, R2, and R3 are each H, and R4 is an OH group], trimethylolpropane trimethacrylate [formula I wherein l, m, and n each are 0, R1, R2, and R3 are each CH3, and R4 is --CH2 CH3 group], and pentaerythritol tetraacrylate [formula I wherein l, m, and n each are 0, R1, R2, and R3 are each H, and R4 is --CH2 --O--C(O)--CH═CH2 ]. Preferably, the secondary olefin-containing crosslinker is selected from the group consisting of a diacrylate, a dimethacrylate, a diacrylamide, a dimethacrylamide, and a divinylbenzene.
The crosslinkers are copolymerized with one or more olefinic monomers optionally functionalized with amino groups, carboxyl groups, hydroxyl groups, etc. Generally, the functional groups serve as starting points for substituents that will be coupled to the polymeric support. These functional groups can be reactive with an organic group that is to be attached to the solid support or it can be modified to be reactive with that group, as through the use of linkers or handles. The functional groups can also impart various desired properties to the polymer, depending on the use of the polymers. For example, if used in ion exchange chromatography, the polymers of the present invention should include charged groups. If used as supports for peptide synthesis, the polymers of the present invention can include amino groups. Preferably, the polymers of the present invention are made using olefinic monomers containing amino functional groups.
Suitable olefins include, for example, vinyl carboxylic acids such as acrylic acid, methacrylic acid, itaconic acid, and 4-vinylbenzoic acid; vinyl esters such as vinyl acetate, vinyl propionate, and vinyl pivalate; allyl esters such as allyl acetate; allyl amines such as allyl amine and allylethylamine; acrylic esters such as methyl acrylate, cyclohexylacrylate, benzylacrylate, isobornyl acrylate, hydroxybutyl acrylate, glycidyl acrylate, and 2-aminoethyl acrylate; methacrylic esters such as methyl methacrylate, butyl methacrylate, cyclohexyl methacrylate, benzyl methacrylate, ethyl methacrylate, glycidyl methacrylate, and 2-aminoethyl methacrylate; vinyl acid halides such as acryloyl chloride and methacryloyl chloride; styreric and substituted styrenes such as 4,ethylstyrene, 4-aminostyrene, dichlorostyrene, chlorostyrene, 4-hydroxystyrene, hydroxymethyl styrene, 4-hydroxy-3-nitro-styrene, 3-hydroxy-4-methoxy-styrene, and vinylbenzyl alcohol; vinyl toluene; heteroaromatic vinyls such as 1-vinylimidazole, 4-vinylpyridine, and 2-vinylpyridine; mono-functional oxyethylene-containing meth(acrylates) such as poly(ethylene glycol) ethyl ether methacrylate [H2 C═C(CH3)--C(O)--O--(CH2 --CH2 --O)q --CH2 --CH3 wherein q=3-5]; hydroxyl-containing (meth)acrylates such as 3-chloro-2-hydroxypropyl (meth)acrylate and hydroxyalkyl (meth)acrylates wherein the akyl moiety contains 2-7 carbon atoms (e.g., 2-hydroxyethyl (meth)acrylate, 3-hydroxypropyl (meth)acrylate, 4-hydroxybutyl (meth)acrylate, 2-hydroxybutyl (meth)acrylate, 2-hydroxypropyl (meth)acrylate, 5-hydroxypentyl (meth)acrylate, and 2,3-dihydroxypropyl (meth)acrylate); hydroxyl-containing caprolactone (meth)acrylates such as the ring opening addition products of ε-caprolactone with 2-hydroxyethyl (meth)acrylate or 2-hydroxypropyl (meth)acrylate; poly(akylene glycol)(meth)acrylates such as the ring opening addition products of ethylene oxide and/or propylene oxide with (meth)acrylic acid such as diethylene glycol (meth)acrylate, triethylene glycol (meth)acrylate, and polyethylene glycol methacrylate, and polypropylene glycol methacrylate; hydroxyl-containing (meth)acrylamides such as N-(hydroxymethhyl)(meth)acrylamide, N-(1-hydroxyethyl)(meth)acrylamide, N-(2-hydroxyethhyl)(meth)acrylamide, N-methyl-N-(2-hydroxyethyl) (meth)acrylamide, N-(1-hexyl-2-hydroxy-1-methylethyl)(meth)acrylamide, N-propyl-N-(2-hydroxyethyl(meth)acrylamide, N-cyclohexyl-N-(2-hydroxypropyl)(meth)acrylamide, α-bromo-N-(hydroxymethyl)acrylamide, and α-chloro-N-(hydroxymethyl)acrylamide); allyl alcohols such as allyl alcohol, 1-buten-3-ol, 1-penten-3-ol, 1-hexen-3-ol, 1-hydroxy-1-vinyl cyclohexane, 2-bromoallyl alcohol, 2-chloroallyl alcohol, 2-methyl-1-buten-3-ol, 2-ethyl-1-penten-3-ol, and 1-phenyl-2-propen-1-ol; hydroxyl-containing vinyl ethers such as hydroxyethyl vinyl ether and hydroxybutyl vinyl ethers); and hydroxyl-containing allyl ethers such as allyl-1-methyl-2-hydroxyethyl ether, allyl-2-hydroxypropyl ether, allyl-2-hydroxy-l-phenyl ether, and allyl-2-hydroxy-2-phenyl ether. It should be understood that one or more types of olefinic monomers can be used to make the polymers of the present invention. Depending on the end use, one can choose the desired combination of monomers and the desired type and amount of functionalization.
The polymer of the present invention can be made using optional ingredients such as free-radical initiators (e.g., thermolytic and/or photolytic initiators). Free-radical initiators useful in the present invention include those normally suitable for free-radical polymerization of acrylate monomers. These species include azo compounds, tertiary amines, as well as organic peroxides, such as benzoyl peroxide and lauryl peroxide, and other initiators. Examples of azo compounds include 2,2'-azobis(2-methylbutyronitrile), 2,2'-azobis(2-methylpropionitrile), and 2,2'-azobis(isobutyronitrile). Commercial products of this type include VAZO 67, VAZO 64 and VAZO 52 initiators supplied by E.I. duPont de Nemours & Co. Typically about 0.1-2.0 wt-% is used based upon the total monomer weight.
Preparation of the Polymer
The polymer of the present invention, preferably in the form of particles or beads, can be produced by various methods, including bulk polymerization followed by grinding and sieving, or by emulsion polymerization, dispersion polymerization, suspension polymerization, seeded polymerization, or precipitation polymerization. Such techniques are described in R. Arshady, J. Microencapsulation, 5, 101 (1988), R. Arshady et al., J. Chem. Soc., Perkins Trans, I, 529-537 (1981), P. Karda et al., Int. J. Pept. Prot. Res., 38, 385-391 (1991), and P. Reinholdsson et al., Angew, Makromol. Chem., 192, 113-132 (1991).
Whether a bulk process or a suspension polymerization process, the process is advantageous particularly because functionalized crosslinked polymers can be made in essentially one step of reacting a functionalized monomer and a crosslinker containing oxyethylene functionality. Other functionalized crosslinked polymers are known containing oxyethylene functionality, however, they are generally grafted polymers prepared from polyethylene glycol. Generally, the bulk one-step process involves combining one or more types of olefinic monomers with a multifunctional oxyethylene-containing (meth)acrylate crosslinker, optionally with a secondary olefin-containing crosslinker and a free-radical initiator, in a suitable solvent. The solvent is one in which the reactants will substantially dissolve, preferably at ambient temperature (i.e., 25°-30° C.). By substantially dissolving it is meant that the reactants do not have to be completely soluble in the solvent of choice, but they should be sufficiently soluble such that there is enough in solution at the temperature at which the polymerization occurs to effect the polymerization. Suitable solvents include cyclohexanol and higher alcohols, toluene, chloroform, methylene chloride, acetonitrile, tetrahydrofuran, carbon tetrachloride, benzene, and the like. The reaction is typically carded out in a substantially oxygen-free atmosphere (e.g., in the presence of argon or nitrogen). To initiate the polymerization, the reaction mixture can be exposed to a source of energy, such as ultraviolet radiation and/or an elevated temperature, for a time sufficient to effect the polymerization. Preferably, the reaction is carried out at a temperature of about -30°-120° C. (more preferably about 50°-90° C.) and exposed to radiation in the wavelength of about 350-370 nm. The polymer can then be crushed and sieved to the desired particle size.
For beads (e.g., spherical particles), any of three generally known suspension polymerization methods can be used. One of these methods uses conventional suspension agents with optional anionic surfactants, another ("limited coalescence method") uses a negatively charged colloidal silica suspending agent and a water-soluble promoter, and a third ("surfactant method") uses a surfactant as a suspending agent, to produce smaller particle sizes. A variety of solvents can be used, such as water or organic solvents such as cyclohexanol. Generally, the choice of solvent, as well as reaction conditions (e.g., temperature), can affect the properties of the polymer (e.g., porosity, pore size, and surface area).
With respect to the first of the three suspension polymerization methods, suspension stabilizers useful in preparing the particles of the present invention are those conventionally used in suspension polymerization processes. The terms "suspension stabilizers," "suspending agents," and "suspension agents" are used interchangeably herein. They may be minimally water-soluble inorganic salts such as those selected from the group consisting of tribasic calcium phosphate, calcium carbonate, calcium sulfate, barium sulfate, barium phosphate, magnesium carbonate, and mixtures thereof. Preferred inorganic suspending agents include those selected from the group consisting of barium sulfate, tribasic calcium phosphate, and mixtures thereof. Water-soluble organic suspending agents, such as those selected from the group consisting of polyvinyl alcohol, poly-N-vinylpyrrolidone, polyacrylic acid, polyacrylamide, and hydroxyalkyl cellulose, can also be used. Surfactants can also be used in this method. Typically, anionic surfactants such as sodium lauryl sulfate and sodium dioctyl sulfosuccinate, are used.
When polymeric particles of less than one micron in diameter are desired, a surfactant or emulsifying agent alone is used as the suspending agent. Surfactants or emulsifiers useful in this "surfactant method" are typically anionic surfactants, cationic surfactants, or nonionic surfactants. Anionic surfactants useful in the present invention include, but are not limited to, the group consisting of alcohol sulfates, alkylaryl sulfonates, ethoxylated alkyl phenol sulfates, ethoxylated alkyl phenol sulfonates and mixtures thereof. Cationic surfactants include, but are not limited to, the group consisting of quaternary ammonium salts wherein at least one higher molecular weight group and two or three lower molecular weight groups are linked to a common nitrogen atom to produce a cation, and wherein the electrically balancing anion is selected from the group consisting of a halide (bromide, chloride, etc.), acetate, nitrite, and lower alkyosulfonate (methosulfate, ethyosulfate, etc.), and mixtures thereof. Nonionic surfactants useful in the present invention include, but are not limited to, the group consisting of ethoxylated alkyl phenols, ethoxylated fatty acids, and ethoxylated fatty alcohols and mixtures thereof. A combination of more than one surfactant or emulsifier is also found to be useful in the invention.
The polymeric particles of the present invention can also be produced by the limited coalescence method. Typically, a reaction mixture of monomers, a negatively charged colloidal silica suspending agent, and a free-radical initiator, are stirred in water under high-speed agitation conditions to break the monomer phase into small droplets. The stirred suspension is heated under nitrogen while polymerization takes place and the desired particles are formed. The particles are collected and washed with water, then dried. The colloidal silica particles have dimensions of about 1-100 nanometers and preferably of about 5-70 nanometers. The size and concentration of these particles controls the size of the polymer particles. Smaller silica particles and higher silica concentration provides smaller bead diameters. Hydrophilic colloidal silica useful as the suspending agent is available commercially, for example, under the tradenames and in the particle sizes as follows: LUDOX TM (20 nm); LUDOX HS (12 nm); LUDOX SM (7 nm); and LUDOX AM (12 nm); all supplied by E.I. duPont de Nemours Company; and NALCO 1060 (60 nm) supplied by Nalco Chemical Company, Oakbrook, Ill.
In this method, the negatively charged colloidal silica suspending agent is preferably used with a water-soluble "promoter" that affects the hydrophobic-hydrophilic balance of the colloidal particles. The components of the promoter are chosen to ensure good water solubility and sufficient complexing with colloidal silica. More specifically, the promoter forms a complex with the suspending agent which is less hydrophilic than the colloidal particles themselves. Although the inventors do not wish to be held to any particular theory, it is believed that the promoter drives the particles of the colloid to the liquid-liquid interface of the oleophilic or hydrophobic droplets and the aqueous medium. As a consequence, the complex is compatible with the hydrophobic or oleophilic monomers dispersed in the aqueous reaction medium. The complex coats the monomer droplets and inhibits their coalescence. Typically, about 0.02-0.5 percent by weight of a promoter is used based on the weight of the aqueous phase. The water-soluble promoter is preferably a low-molecular weight (i.e., about 200 to about 1000 number average molecular weight) organic condensation polymer of a lower alkylene dicarboxylic acid and an alkanol amine (preferably a mono- or dialkanol amine). The dicarboxylic acid can have an alkylene chain having about 2-6 carbon atoms in length. The preferred diacid of this class is adipic acid. The alkanol amine preferably is a lower alkanol amine of which the alkanol groups contain about 1-4 carbon atoms, selected from the group consisting of diethanolamine, 2-amino-2-ethyl-1,3-propanediol, methyl amino ethanol, N-methyldiethanolamine, N-propyldiethanolamine and N-butyldiethanolamine. With adipic acid, these alkanol amines form the polyesters (by which term we also include polyesteramides), such as poly(diethanolamine adipate) and poly(methylamino ethanol adipate). Preferably, the water-soluble promoter is a condensation polymer of adipic acid and diethanolamine.
Also desirable in the polymerization reaction mixture is an inhibitor, i.e., a water-soluble substance to prevent the emulsion or solution polymerization of the monomers in the aqueous phase. Examples of inhibitors include, but are not limited to, those selected from the group consisting of sodium nitrite, copper salts, methylene blue, potassium dichromate, phenols, and mixtures thereof. A preferred example of such a water-soluble polymerization inhibitor is potassium dichromate. Typically about 0.01-0.1 percent by weight of an inhibitor is used based on the total weight of the aqueous phase.
Applications
The polymer of the present invention can be used as a support for a variety of applications. These include, for example, solid-phase synthesis, chromatography (e.g., affinity chromatography, size-exclusion chromatography, ion-exchange chromatography, ion-pair chromatography, normal-phase chromatography, reversed-phase chromatography, and hydrophobic interaction chromatography), and immobilization of macromolecules (e.g., enzymes and antibodies) to increase their stability. The polymeric supports of the present invention have several desirable characteristics for these applications, particularly for solid-phase synthesis: they swell in a variety of solvents; they are stable under the conditions used in most solid-phase syntheses; and they are stable at the pressures experienced in column reactors.
Solid-phase peptide synthesis typically begins with covalent attachment of a first amino acid (e.g., an "internal reference" amino acid) to the solid support. If the solid support was prepared with amino-functional monomers, the carboxyl group of an N.sup.α -protected amino acid is covalently linked to a handle moiety which is attached to the amino group on the polymer. A "handle" is defined as a bifunctional spacer which serves to attach the initial amino acid residue to the polymeric support. One end of the handle incorporates a smoothly cleavable protecting group and the other end of the handle couples to the functionalized solid support. Handles which can be used with the present polymers in solid-phase peptide synthesis include, for example acid-labile p-alkoxybenzyl (PAB) handles, photolabile o-nitrobenzyl ester handles, and handles such as those described by Albericio et al., J. Org. Chem., 55, 3730-3743 (1990) and references cited therein, and in U.S. Patent Nos. 5,117,009 (Barany) and 5,196,566 (Barany et al.). The appropriate handles are coupled quantitatively in a single step onto the amino-functionalized supports to provide a general starting point of well-defined structures for peptide chain assembly. The handle protecting group is removed and the C-terminal residue of the N.sup.α -protected first amino acid is coupled quantitatively to the handle. Once the handle is coupled to the solid-phase and the initial amino acid or peptide is attached to the handle, the general synthesis cycle proceeds. The synthesis cycle generally consists of deprotection of the N.sup.α -amino group of the amino acid or peptide on the resin, washing, and, if necessary, a neutralization step, followed by reaction with a carboxyl-activated form of the next N.sup.α -protected amino acid. The cycle is repeated to form the peptide or protein of interest. Solid-phase peptide synthesis methods using functionalized insoluble supports are well known. Merrifield, J. Am. Chem. Soc., 85, 2149 (1963); Barany and Merrifield, In Peptides, Vol. 2, pp. 1-284 (1979); Barany et al., Int. J. Peptide Protein Res,, 30, 705-739 (1987). It should be understood that the polymeric materials of the present invention can be used in the solid-phase synthesis of a variety of organic molecules. Peptides are used herein merely as exemplary such molecules.
In one particular embodiment of the present invention, an internal reference amino acid (Fmoc-Nle-OH) was coupled to the free amino groups on the resin particles, followed by deprotection and coupling of the handle Fmoc-5-(-4-aminomethyl-3,5-dimethoxyphenoxy)valeric acid (PAL). The challenging sequence 65-74 of acyl carrier protein (ACP) was synthesized successfully on the support by Fmoc-chemistry, using both a conventional solvent (DMF, FIG. 1) and a non-conventional solvent (acetonitrile, FIG. 2) as the reaction media. In addition, H-(Ala)10 -Val amide (FIG. 3) has been synthesized with results comparable to those obtained on commercially available PEG-PS.
Objects and advantages of this invention are further illustrated by the following examples. The particular materials and amounts thereof recited in these examples as well as other conditions and details, should not be construed to unduly limit this invention. All materials are commercially available from Aldrich Chemical Company, Inc., Milwaukee, Wis., except where stated or otherwise made apparent.
EXAMPLES Example 1-7: Preparation of Polymers Example 1
Preparation of trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate/poly(ethylene glycol-400)-dimethacrylate/2-aminoethyl methacrylate-copolymer: 2-aminoethyl methacrylate.HCl (0.60 g, 3.6 mmol, obtained from Eastman Kodak, Rochester, N.Y.), poly(ethylene glycol-400)-dimethacrylate (3.88 g, 7.0 mmol), trimethylolpropane ethoxylate ("14/3 EO/OH") triacrylate (structure I, l+m+n˜14 (divided among 3 acrylate chains), R1, R2, R3 =H, R4 =C2 H5) (2.74 g, 3.0 mmol) and 2,2'-azobis(2-methylpropionitrile) (0.1 g, 0.6 mmol) were dissolved in 16 ml of cyclohexanol. The solution, in a KIMAX Screw Cap Culture Tube, was sonicated and then purged with a stream of nitrogen for 5 minutes. The tube was sealed and placed in a RAYONET Photochemical Reactor overnight. The polymerization was initiated by a combination of photolytic (350 nm) and thermolytic (50° C.) dissociation of 2,2'-azobis(2-methylpropionitrile). The resulting polymer was ground in a mortar and wet-sieved with water through 106 μm and 125 μm sieves. The 106-125 μm fraction was collected and washed with water (acidified with trifluoroacetic acid "TFA" to pH 1-2), and methanol on a sintered glass funnel. The resin (2.66 g) was dried in vacuo overnight. A portion of the resin was derivatized as described in Examples 8 and 9 with an internal reference and then a handle. The loading of Fmoc-PAL on the resulting resin was 0.25 mmol per gram of resin.
Example 2
Preparation of trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate/poly(ethylene glycol-400)-dimethacrylate/allylamine copolymer: allylamine (0.16 g, 2.75 mmol), poly(ethylene glycol-400)-dimethacrylate (3.88 g, 7.0 mmol), trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate (2.74 g, 3.0 mmol), and 2,2'-azobis(2-methylpropionitrile) (0.1 g, 0.6 mmol) were dissolved in 12 ml of cyclohexanol. The solution was sonicated, purged with a stream of nitrogen for 5 minutes and then polymerized and processed as described in Example 1 to give 1.88 grams of resin. A portion of the resin was derivatized as described in Examples 8 and 9. The loading of Fmoc-PAL on the resulting resin was 0.11 mmol per gram of resin.
Example 3
Preparation of trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate/4-aminostyrene copolymer: 4-aminostyrene (0.41 g, 3.45 mmol, obtained from Lancaster, Windham, N.H.), trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate (8.21 g, 9.0 mmol), and 2,2'-azobis(2-methylpropionitrile) (0.1 g, 0.6 mmol) were dissolved in 12 ml of cyclohexanol. The solution was sonicated, purged with a stream of nitrogen for 5 minutes, and then polymerized and processed as described in Example 1 to give 2.35 grams of resin. A portion of the resin was derivatized as described in Examples 8 and 9. The loading of Fmoc-PAL on the resulting resin was 0.22 mmol per gram of resin.
Example 4
Preparation of trimethylolpropane ethoxylate (14/3 EO/OH)/allylamine copolymer: allylamine (0.514 g, 9.0 mmol), trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate (8.208 g, 9.0 mmol), and 2,2'-azobis(2-methylpropionitrile) (0.1 g, 0.6 mmol) were dissolved in 17.5 ml of cyclohexanol. The solution was sonicated, purged with a stream of nitrogen for 5 minutes and then polymerized and processed as described in Example 1 to give 2.26 g resin. A portion of the resin was derivatized as described in Examples 8 and 9. The loading of Fmoc-PAL on the resulting resin was 0.29 mmol per gram of resin.
Example 5
Preparation of parent and amino-functionalized trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate/acrylic acid copolymer: acrylic acid (0.25 g, 3.45 mmol), trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate (8.21 g, 9.0 mmol), and 2,2'-azobis(2-methylpropionitrile) (0.1 g, 0.6 mmol) were dissolved in 12 ml of cyclohexanol. The solution was sonicated, purged with a stream of nitrogen for 5 minutes, and then polymerized and processed as described in Example 1 to give 2.40 grams of resin.
A portion (0.40 g) of this ground and sieved trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate/acrylic acid copolymer was treated with N,N'-diisopropylcarbodiimide (40 mg, 0.32 mmol, "DIPCDI" obtained from Advanced ChemTech, Louisville, Ky.) and ethylenediamine (99 mg, 1.64 mmol) in 6 ml of DMF-CH2 Cl2 (1:1, v/v) and allowed to react at 25° C. overnight. The polymer particles were washed with dimethylformamide "DMF", methanol, acetonitrile and methylene chloride, and then dried in vacuo overnight. The resin was derivatized as described in Examples 8 and 9. The loading of Fmoc-PAL on the resulting resin was 0.15 mmol per gram of resin.
Example 6
Preparation of trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate/poly(ethylene glycol) ethyl ether methacrylate/2-aminoethyl methacrylate-copolymer: 2-aminoethyl methacrylate.HCl (0.73 g, 3.6 mmol), poly(ethylene glycol) ethyl ether methacrylate (0.74 g, 16 mmol), trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate (7.30 g, 8.0 mmol), and 2,2'-azobis(2-methylpropionitrile) (0.1 g, 0.6 mmol) were dissolved in 20 ml of cyclohexanol. The solution was sonicated, purged with a stream of nitrogen for 5 minutes, and then polymerized and processed as described in Example 1 to give 1.84 gram of resin. The resin was derivatized as described in Examples 8 and 9. The loading of Fmoc-PAL on the resulting resin was 0.27 mmol per gram of resin.
Example 7
Preparation of trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate/methyl methacrylate/2-aminoethyl methacrylate-copolymer: 2-aminoethyl methacrylate.HCl (0.56 g, 3.4 mmol), methyl methacrylate (0.47 g, 4.6 mmol), trimethylolpropane ethoxylate (14/3 EO/OH) triacrylate (7.30 g, 8.0 mmol), and 2,2'-azobis(2-methylpropionitrile) (0.1 g, 0.6 mmol) were dissolved in 14 ml of cyclohexanol-water (13:1, v/v). The solution was sonicated, purged with a stream of nitrogen for 5 minutes, and then polymerized and processed as described in Example 1. A portion of the resin was derivatized as described in Examples 8 and 9. The loading of Fmoc-PAL on the resulting resin was 0.20 mmol per gram.
Example 8-9: Derivatization of the Polymers (Coupling of "Internal Reference" Amino Acid and Handle) for Solid-Phase Synthesis Example 8
Coupling of Fmoc-Nle-OH (Fmoc-norleucine; internal reference amino acid) to amino-functionalized resin: Fmoc-Nle-OH (255 mg, 0.72 mmol, obtained from Chem-Index International, Wood Dale, Ill.) in DMF (2 ml), N,N'-diisopropylcarbodiimide (91 mg, 0.72 mmol) in DMF (0.5 ml), and 1-hydroxy-7-azabenzotriazole (98 mg, 0.72 mmol) in DMF (0.5 ml) were added to 0.6 g of resin and reacted at 25° C. overnight. The resin was washed with DMF (5×6 ml) and methylene chloride (5×6 ml). The Fmoc-group was removed from the Fmoc-Nle-resin by treatment with piperidine-DMF (1:4, v/v) for 15+25 min, and then again washed with DMF (5×6 ml) and methylene chloride (5×6 ml).
Example 9
Coupling of Fmoc-PAL-OH [Fmoc-5-(4-aminomethyl-3,5-dimethoxyphenoxy)valeric acid] to Nle-functionalized resin: Fmoc-PAL-OH (354 mg, 0.72 mmol, Millipore, Bedford, Mass.) in DMF (2 ml), N,N'-diisopropylcarbodiimide (91 mg, 0.72 mmol) in DMF (0.5 ml) and 1-hydroxy-7-azabenzotriazole (HOAt) (98 mg, 0.72 mmol) in DMF (0.5 ml) were added to 0.6 g of Nle-resin (product of Example 8) and reacted at 25° C. overnight. The resin was washed with DMF (5×6 ml) and methylene chloride (5×6 ml).
Example 10-12: Peptide Synthesis on the Supports Example 10
Synthesis of acyl carrier protein (ACP) (65-74) amide (H-Val-Gln-Ala-Ala-Ile-Asp-Tyr-Ile-Asn-Gly-NH2) on PAL-Nle-functionalized resin: the synthesis was performed intentionally under non-optimized conditions, in order to emphasize the usefulness of this new class of supports. For this Example 10, Fmoc-PAL-Nle-resin (0.1 g) prepared according to Example 4, was used. Fmoc-removal was achieved with piperidine-DMF (1:4, v/v) for 5+15 minutes (i.e., this was carried out in two steps, one for 5 minutes and one for 15 minutes with the use of fresh piperidine-DMF in the second step). Appropriate N.sup.α -Fmoc-amino acids (150 μmol) were each in mm dissolved in DMF (0.4 ml), and 2 hour couplings were each initiated with 150 μmol of 1-hydroxy-7-azabenzotriazole ("HOAt" obtained from Millipore, Bedford, Mass.) dissolved in DMF (0.2 ml) and 150 μmol of N,Nμ-diisopropylcarbodiimide dissolved in DMF (0.2 ml). All washings between couplings and deprotections were performed with DMF. Cleavage of the peptide was achieved with TFA-CH2 Cl2 (9:1, v/v) (2 ml) for 2.5 hours. The solutions containing cleaved peptides were expressed from the solid-phase reaction vessels with positive nitrogen pressure, and the cleaved resins were washed further with TFA-CH2 Cl2 (9:1, v/v) (3×2 ml). The combined filtrates were evaporated to dryness (including chasing with CH2 Cl2, 3×3 ml), suspended in water, and lyophilized. The crude peptide was dissolved in 0.1% TFA in water-acetonitrile (1:1), and shown to be 91% pure by high-performance liquid chromatography (FIG. 1). A VYDAC C18 reversed-phase column (4.6×250 mm) was eluted at a flow-rate of 1 ml/minute with a linear gradient over 30 minutes from 19:1 to 3:1 of 0.1% TFA in water and 0.1% TFA in acetonitrile. Peptides were detected spectrophotometrically at 220 nm.
Example 11
Synthesis of acyl carrier protein (ACP) (65-74) amide (H-Val-Gln-Ala-Ala-Ile-Asp-Tyr-Ile-Asn-Gly-NH2) on PAL-Nle-functionalized resin: the synthesis was performed intentionally under non-optimized conditions in a, for peptide synthesis, non-conventional reaction medium (acetonitrile), in order to emphasize the usefulness of this new class of supports. For this Example 11, Fmoc-PAL-Nle-resin (0.1 g) prepared according to Example 4, was used. Fmoc-removal was achieved with piperidine-DMF (1:4, v/v) for 5+15 minutes. Appropriate N.sup.α -Fmoc-amino acids (150 μmol) were each in mm dissolved in acetonitrile (0.4 ml, a few drops of DMF was added if needed to dissolve the amino acid derivative), and 2 hour couplings were each initiated with 150 μmol of N,N'-diisopropylcarbodiimide dissolved in acetonitrile (0.4 ml). All washings between couplings and deprotections were performed with acetonitrile. Cleavage of the peptide was achieved with TFA-CH2 Cl2 (9:1, v/v) (2 ml) for 2.5 hours. The solutions containing cleaved peptides were expressed from the solid-phase reaction vessels with positive nitrogen pressure, and the cleaved resins were washed further with TFA-CH2 Cl2 (9:1, v/v) (3×2 ml). The combined filtrates were evaporated to dryness (including chasing with CH2 Cl2, 3×3 ml), suspended in water, and lyophilized. The crude peptide was dissolved in 0.1% TFA in water-acetonitrile (1:1), and shown to be 95% pure by high-performance liquid chromatography (FIG. 2). A VYDAC Gig reversed-phase column (4.6×250 mm) was eluted at a flow-rate of 1 ml/minute with a linear gradient over 30 minutes from 19:1 to 3:1 of 0.1% TFA in water and 0.1% TFA in acetonitrile. Peptides were detected spectrophotometrically at 220 mm.
Example 12
Synthesis of deca-alanyl-valine amide (H-(Ala)10 -Val-NH2) on PAL-Nle-functionalized polymer particles: the synthesis was performed intentionally under non-optimized conditions, in order to emphasize the usefulness of this new class of supports. For this Example 12, Fmoc-PAL-Nle-resin prepared according to Example 1, was used. Fmoc-removal was achieved with piperidine-DMF (1:4, v/v) for 3+17 minutes. Appropriate N.sup.α -Fmoc-amino acids (Fmoc-Val-OH and Fmoc-Ala-OH, 120 μmol) in DMF (0.5 riff) were added to 0.1 g resin from Example 1, and 50 minute couplings were initiated with 114 μmol of O-(7-azabenzotriazol-1-yl)-1,1,3,3-tetramethyluronium hexafluorophosphate ("HATU" obtained from Millipore, Bedford, Mass.) in DMF (0.5 ml), 120 μmol of 1-hydroxy-7-azabenzotriazole ("HOAt") in DMF (0.5 ml) and 230 μmol of N,N-diisopropylethylamine ("DIEA") in DMF (0.5 ml). Cleavage of the peptide was achieved with TFA-water (9:1, v/v) (2 ml) for 2 hours. The solutions containing cleaved peptides were expressed from the solid-phase reaction vessels with positive nitrogen pressure, and the cleaved resins were washed further with TFA-water (9:1, v/v) (3×2 ml). The combined filtrates were evaporated (including chasing with CH2 Cl2, 3×3 ml), suspended in water, and lyophilized. The crude peptide was dissolved in neat TFA and shown to be 57% pure by high-performance liquid chromatography (FIG. 3). A VYDAC C18 reversed-phase column (4.6×250 mm) was eluted at a flow-rate of 1 ml/minute with a linear gradient over 30 minutes from 1:0 to 6:4 of 0.1% TFA in water and 0.1% TFA in acetonitrile. Peptides were detected spectrophotometrically at 220 nm.
The results of Examples 10-12 demonstrate that these supports can be used for the synthesis of peptides that are difficult to make in solid-phase.
The complete disclosures of all patents, patent documents, and publications are incorporated herein by reference, as if individually incorporated. While this invention has been described in connection with specific embodiments, it should be understood that it is capable of further modification. The claims herein are intended to cover those variations which one skilled in the art would recognize as the chemical equivalent of what has been described herein. Thus, various omissions, modifications, and changes to the principles described herein may be made by one skilled in the art without departing from the true scope and spirit of the invention which is indicated by the following claims.

Claims (26)

What is claimed:
1. A polymer prepared from a composition comprising at least one olefinic monomer and a multifunctional oxyethylene-containing meth(acrylate) crosslinker of the following formula (I): ##STR4## wherein: (a) R1, R2, and R3 are each independently hydrogen or a methyl group;
(b) R4 is hydrogen or an organic group or substituent that can interact in the polymerization and/or crosslinking process or is nonreactive under the conditions of the polymerization and/or crosslinking process;
(c) each of l, m, and n is no greater than about 100 with the proviso that at least one of l, m, or n is at least 1; and
(d) wherein the total amount of crosslinker used is a least about 50 mole-%.
2. The polymer of claim 1 wherein the olefinic monomer is functionalized.
3. The polymer of claim 2 wherein the olefinic monomer is functionalized with an amino group.
4. The polymer of claim 3 wherein the amino functionalized olefinic monomer is allyl amine, 2-aminoethyl methacrylate, or 4-aminostyrene.
5. The polymer of claim 1 wherein each of l, m, and n is 1-30.
6. The polymer of claim 1 wherein the multifunctional oxyethylene-containing meth(acrylate) crosslinker is used in an mount of at least about 10 mole-%.
7. The polymer of claim 1 wherein the multifunctional oxyethylene-containing meth(acrylate) crosslinker is used in an amount of at least about 25 mole-%.
8. The polymer of claim 1 wherein the composition further comprises a secondary olefin-containing crosslinker.
9. The polymer of claim 8 wherein the secondary crosslinker is selected from the group consisting of a diacrylate, a dimethacrylate, a diacrylamide, a dimethacrylamide, and a divinylbenzene.
10. The polymer of claim 1 wherein each of l, m, and n is 1-100.
11. The polymer of claim 1 which is in the form of beads.
12. The polymer of claim 1 which increases in volume by at least about 1.5 times in methylene chloride.
13. The polymer of claim 12 which increases in volume by at least about 3 times in methylene chloride.
14. The polymer of claim 1 which is suitable for use in solid phase organic synthesis.
15. Polymer beads prepared from a composition comprising at least one olefinic monomer and a multifunctional oxyethylene-containing meth(acrylate) crosslinker of the following formula (I): ##STR5## wherein: (a) R1, R2, and R3 are each independently hydrogen or a methyl group;
(b) R4 is hydrogen or an organic group or substituent that can interact in the polymerization and/or crosslinking process or is nonreactive under the conditions of the polymerization and/or crosslinking process;
(c) each of l, m, and n is 1-100; and
(d) wherein the total mount of crosslinker used is a least about 50 mole-%.
16. The polymer beads of claim 15 wherein the olefinic monomer is functionalized.
17. The polymer beads of claim 16 wherein the olefinic monomer is functionalized with an amino group.
18. The polymer of claim 17 wherein the amino functionalized olefinic monomer is allyl amine, 2-aminoethyl methacrylate, or 4-aminostyrene.
19. The polymer of claim 15 wherein each of l, m, and n is 1-30.
20. The polymer of claim 15 wherein the multifunctional oxyethylene-containing meth(acrylate) crosslinker of formula (I) is used in an mount of at least about 10 mole-%.
21. The polymer of claim 15 wherein the multifunctional oxyethylene-containing meth(acrylate) crosslinker of formula (I) is used in an amount of at least about 25 mole-%.
22. The polymer of claim 15 wherein the composition further comprises a secondary olefin-containing crosslinker.
23. The polymer of claim 22 wherein the secondary crosslinker is selected from the group consisting of a diacrylate, a dimethacrylate, a diacrylamide, a dimethacrylamide, and a divinylbenzene.
24. The polymer beads of claim 15 which increase in volume by at least about 1.5 times.
25. The polymer beads of claim 24 which increase in volume by at least about 3 times.
26. The polymer beads of claim 15 which are suitable for use in solid phase organic synthesis.
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Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5910554A (en) * 1995-06-16 1999-06-08 Regents Of The University Of Minnesota Highly cross-linked polymeric supports
US6037014A (en) * 1997-11-06 2000-03-14 The Edgington Co. Coating composition
US20030114619A1 (en) * 2000-06-07 2003-06-19 Navin Suyal Photo-polymers and use thereof
US6610630B2 (en) * 1994-05-16 2003-08-26 Ciphergen Biosystems, Inc. Chromatography adsorbents utilizing mercapto heterocyclic ligands
US6642334B2 (en) 2001-07-09 2003-11-04 Carlsberg A/S Beaded polyethylene glycol-based resins
US20060047105A1 (en) * 2004-06-23 2006-03-02 Krzysztof Darlak Polymer-supported reagent for the preparation of disulfide-bridged peptides
US20090291294A1 (en) * 2008-05-26 2009-11-26 Nitto Denko Corporation Solid-phase support for nucleic acid synthesis
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US20050033132A1 (en) 1997-03-04 2005-02-10 Shults Mark C. Analyte measuring device
US6001067A (en) 1997-03-04 1999-12-14 Shults; Mark C. Device and method for determining analyte levels
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US6833275B1 (en) * 1997-07-22 2004-12-21 Roche Diagnostics Gmbh Gold conjugates containing detergent
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US8282549B2 (en) 2003-12-09 2012-10-09 Dexcom, Inc. Signal processing for continuous analyte sensor
US20050176136A1 (en) * 2003-11-19 2005-08-11 Dexcom, Inc. Afinity domain for analyte sensor
US7651596B2 (en) 2005-04-08 2010-01-26 Dexcom, Inc. Cellulosic-based interference domain for an analyte sensor
JP4708342B2 (en) 2003-07-25 2011-06-22 デックスコム・インコーポレーテッド Oxygen augmentation membrane system for use in implantable devices
US20070173709A1 (en) * 2005-04-08 2007-07-26 Petisce James R Membranes for an analyte sensor
US9135402B2 (en) 2007-12-17 2015-09-15 Dexcom, Inc. Systems and methods for processing sensor data
US20190357827A1 (en) 2003-08-01 2019-11-28 Dexcom, Inc. Analyte sensor
EP1687343B1 (en) * 2003-08-04 2014-07-23 Matrix Innovation Inc. New polyether based monomers and highly cross-linked amphiphile resins
US20140121989A1 (en) 2003-08-22 2014-05-01 Dexcom, Inc. Systems and methods for processing analyte sensor data
US7920906B2 (en) 2005-03-10 2011-04-05 Dexcom, Inc. System and methods for processing analyte sensor data for sensor calibration
US9247900B2 (en) 2004-07-13 2016-02-02 Dexcom, Inc. Analyte sensor
US8532730B2 (en) 2006-10-04 2013-09-10 Dexcom, Inc. Analyte sensor
US8364231B2 (en) 2006-10-04 2013-01-29 Dexcom, Inc. Analyte sensor
ES2646312T3 (en) * 2003-12-08 2017-12-13 Dexcom, Inc. Systems and methods to improve electromechanical analyte sensors
US8277713B2 (en) 2004-05-03 2012-10-02 Dexcom, Inc. Implantable analyte sensor
US7946984B2 (en) 2004-07-13 2011-05-24 Dexcom, Inc. Transcutaneous analyte sensor
WO2006127694A2 (en) 2004-07-13 2006-11-30 Dexcom, Inc. Analyte sensor
US20060249381A1 (en) * 2005-05-05 2006-11-09 Petisce James R Cellulosic-based resistance domain for an analyte sensor
US8744546B2 (en) 2005-05-05 2014-06-03 Dexcom, Inc. Cellulosic-based resistance domain for an analyte sensor
US7705062B2 (en) * 2005-09-08 2010-04-27 The United States Of America As Represented By The Secretary Of The Navy Nanoporous organosilicas as pre-concentration materials for sensors
JP4932377B2 (en) * 2006-08-08 2012-05-16 日東電工株式会社 Carrier for solid phase synthesis and method for producing the same
US8417312B2 (en) 2007-10-25 2013-04-09 Dexcom, Inc. Systems and methods for processing sensor data
US8290559B2 (en) 2007-12-17 2012-10-16 Dexcom, Inc. Systems and methods for processing sensor data
US20100073754A1 (en) * 2008-09-24 2010-03-25 Gentex Corporation Ultraviolet light stabilizing compounds and associated media and devices
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Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS56138107A (en) * 1980-03-28 1981-10-28 Kanebo Ltd Resin molding material for medical and dental use, investment for repair and repairing material
JPS60147419A (en) * 1984-01-09 1985-08-03 Yoshiaki Motozato Amphipathic gel
DE3500180A1 (en) * 1985-01-04 1986-07-10 Ernst Prof. Dr. 7400 Tübingen Bayer Graft copolymers from crosslinked polymers and polyoxyethylene, process for their preparation and their use
JPH03152168A (en) * 1989-11-07 1991-06-28 Shikoku Kaken Kogyo Co Ltd Water-based resin dispersion liquid
WO1992004384A1 (en) * 1990-08-31 1992-03-19 Regents Of The University Of Minnesota Polyethylene glycol derivatives for solid-phase applications
US5117009A (en) * 1990-08-31 1992-05-26 University Of Minnesota Xanthenylamide handle for use in peptide synthesis
EP0510393A1 (en) * 1991-04-08 1992-10-28 W.R. Grace & Co.-Conn. Biocompatible, low protein adsorption affinity matrix
US5196566A (en) * 1990-08-31 1993-03-23 Regents Of The University Of Minnesota Hypersensitive acid-labile handle for solid-phase peptide synthesis
US5235028A (en) * 1990-08-31 1993-08-10 University Of Minnesota Polyethylene glycol derivatives for solid-phase applications
WO1993016118A1 (en) * 1992-02-13 1993-08-19 Carlsberg A/S Polyethylene or polypropylene glycol containing polymer

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5656707A (en) * 1995-06-16 1997-08-12 Regents Of The University Of Minnesota Highly cross-linked polymeric supports

Patent Citations (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS56138107A (en) * 1980-03-28 1981-10-28 Kanebo Ltd Resin molding material for medical and dental use, investment for repair and repairing material
JPS60147419A (en) * 1984-01-09 1985-08-03 Yoshiaki Motozato Amphipathic gel
DE3500180A1 (en) * 1985-01-04 1986-07-10 Ernst Prof. Dr. 7400 Tübingen Bayer Graft copolymers from crosslinked polymers and polyoxyethylene, process for their preparation and their use
US4908405A (en) * 1985-01-04 1990-03-13 Ernst Bayer Graft copolymers of crosslinked polymers and polyoxyethylene, processes for their production, and their usage
JPH03152168A (en) * 1989-11-07 1991-06-28 Shikoku Kaken Kogyo Co Ltd Water-based resin dispersion liquid
US5117009A (en) * 1990-08-31 1992-05-26 University Of Minnesota Xanthenylamide handle for use in peptide synthesis
WO1992004384A1 (en) * 1990-08-31 1992-03-19 Regents Of The University Of Minnesota Polyethylene glycol derivatives for solid-phase applications
US5196566A (en) * 1990-08-31 1993-03-23 Regents Of The University Of Minnesota Hypersensitive acid-labile handle for solid-phase peptide synthesis
US5235028A (en) * 1990-08-31 1993-08-10 University Of Minnesota Polyethylene glycol derivatives for solid-phase applications
US5403750A (en) * 1991-03-06 1995-04-04 W. R. Grace & Co.-Conn. Biocompatible, low protein adsorption affinity matrix
EP0510393A1 (en) * 1991-04-08 1992-10-28 W.R. Grace & Co.-Conn. Biocompatible, low protein adsorption affinity matrix
WO1993016118A1 (en) * 1992-02-13 1993-08-19 Carlsberg A/S Polyethylene or polypropylene glycol containing polymer
US5352756A (en) * 1992-02-13 1994-10-04 Carlsberg A/S Poly(ethylene or propylene glycol)-containing polymer

Non-Patent Citations (71)

* Cited by examiner, † Cited by third party
Title
"Aqueous Resin Dispersions for Coatings and Textile Bording" Yoshiichi et al, JP03152168, Jun. 28, 1991 pp. 115-117 and 2 (inked) (Computer Generated).
Albericio et al., "Preparation and Application of the 5-(4-(9-Fluorenylmethyloxycarbonyl)aminomethyl-3,5-dimethoxyphenoxy)-valeric Acid (PAL) Handle for the Solid-Phase Synthesis of C-Terminal Peptide amides under Mild Conditions," J. Org. Chem., 55, 3730-3743 (1990).
Albericio et al., Preparation and Application of the 5 (4 (9 Fluorenylmethyloxycarbonyl)aminomethyl 3,5 dimethoxyphenoxy) valeric Acid (PAL) Handle for the Solid Phase Synthesis of C Terminal Peptide amides under Mild Conditions, J. Org. Chem., 55, 3730 3743 (1990). *
Aqueous Resin Dispersions for Coatings and Textile Bording Yoshiichi et al, JP03152168, Jun. 28, 1991 pp. 115 117 and 2 (inked) (Computer Generated). *
Arshady et al., "Peptide Synthesis. Part 1. Preparation and Use of Polar Supports based on Poly(dimethylacrylamide)," J. of Chem. Soc. Perkin I, 2, 529-537 (1981).
Arshady et al., "Preparation of polymer nano- and microspheres by vinyl polymerization techniques," J. Microencapsulation, 5(2), 101-114 (1988).
Arshady et al., Peptide Synthesis. Part 1. Preparation and Use of Polar Supports based on Poly(dimethylacrylamide), J. of Chem. Soc. Perkin I, 2, 529 537 (1981). *
Arshady et al., Preparation of polymer nano and microspheres by vinyl polymerization techniques, J. Microencapsulation, 5(2), 101 114 (1988). *
Atherton et al., "Racemisation of Activated, Urethane-protected Amino-acids by p-Dimethyl-aminopyridine. Significance in Solid-phase Peptide Synthesis," J.C.S. Chem. Comm., 7, 336-337 (1981).
Atherton et al., Racemisation of Activated, Urethane protected Amino acids by p Dimethyl aminopyridine. Significance in Solid phase Peptide Synthesis, J.C.S. Chem. Comm., 7, 336 337 (1981). *
Barany et al., "Novel polyethylene glycol-polystyrene (PEG-PS) graft supports for solid-phase peptide synthesis," Peptides, 267-268 (1992).
Barany et al., "Solid-phase peptide synthesis: a silver anniversary report," Int. J. Peptide Protein Res., 30, 705-739 (1987).
Barany et al., Novel polyethylene glycol polystyrene (PEG PS) graft supports for solid phase peptide synthesis, Peptides, 267 268 (1992). *
Barany et al., Solid phase peptide synthesis: a silver anniversary report, Int. J. Peptide Protein Res., 30, 705 739 (1987). *
Barany et al., The Peptides, 2, Bookcover, Copyright Page, Table of Contents, Chapter 1 Table of Contents (1979). *
Bayer et al., "Immobilized Polyoxyethylene, A New Support for Peptide Synthesis," Peptides: Structure and Function, Eds.: V.J. Hruby et al., Proceedings of the 8th American Peptide Symposium, 87-09 (1983).
Bayer et al., Immobilized Polyoxyethylene, A New Support for Peptide Synthesis, Peptides: Structure and Function, Eds.: V.J. Hruby et al., Proceedings of the 8th American Peptide Symposium, 87 09 (1983). *
Columbo, "New Poly(Ethylene Glycol) Supports for the Liquid-Phase Synthesis of Protected Hydrazides," Tetrahedron Letters, 22(41), 4129-4132 (1981).
Columbo, New Poly(Ethylene Glycol) Supports for the Liquid Phase Synthesis of Protected Hydrazides, Tetrahedron Letters, 22(41), 4129 4132 (1981). *
Drumheller et al., "Densely Crosslinked polymer networks of poly(ethylene glycol) in trimethylopropane triacrylate for cell-adhesion-resistant surfaces," Journal of Biomedical Research, 29, 207-215 (1995).
Drumheller et al., "Multifunctional Poly(ethylene glycol) Semi-Interpenetrating Polymer Networks as Highly Selective Adhesive Substrates for Bioadhesive Peptide Grafting," Biotechnology and Bioengineering, 43, 772-780 (1994).
Drumheller et al., "Polymer Networks with Grafted Cell Adhesion Peptides for Highly Biospecific Cell Adhesive Substrates," Polymeric Networks for Biospecific Substrates, 380-388 (1994).
Drumheller et al., Densely Crosslinked polymer networks of poly(ethylene glycol) in trimethylopropane triacrylate for cell adhesion resistant surfaces, Journal of Biomedical Research, 29, 207 215 (1995). *
Drumheller et al., Multifunctional Poly(ethylene glycol) Semi Interpenetrating Polymer Networks as Highly Selective Adhesive Substrates for Bioadhesive Peptide Grafting, Biotechnology and Bioengineering, 43, 772 780 (1994). *
Drumheller et al., Polymer Networks with Grafted Cell Adhesion Peptides for Highly Biospecific Cell Adhesive Substrates, Polymeric Networks for Biospecific Substrates, 380 388 (1994). *
Englebretsen et al., "Fmoc SPPS using Perloza™ beaded cellulose," Int. J. Peptide Protein Res., 43, 546-554 (1994).
Englebretsen et al., Fmoc SPPS using Perloza beaded cellulose, Int. J. Peptide Protein Res., 43, 546 554 (1994). *
Hargitai et al, "Functionalized polymer particles for chiral separation," J. Chromatogr., 630, 79-94 (1993).
Hargitai et al, Functionalized polymer particles for chiral separation, J. Chromatogr., 630, 79 94 (1993). *
Hargitai et al., "Polymer-bound chiral polymers for use in enantiomer separations," Journal of Chromatography, 540, 145-155 (1991).
Hargitai et al., Polymer bound chiral polymers for use in enantiomer separations, Journal of Chromatography, 540, 145 155 (1991). *
Hellerman et al., "Poly(ethylene glycols)s Grafted onto Crosslinked Polystrenes, 2a), Multidetachably Anchored Polymer Systems for the Synthesis of Solubilized Peptides," Makromol. Chem., 184, 2603-2617 (1983).
Hellerman et al., Poly(ethylene glycols)s Grafted onto Crosslinked Polystrenes, 2 a) , Multidetachably Anchored Polymer Systems for the Synthesis of Solubilized Peptides, Makromol. Chem., 184, 2603 2617 (1983). *
Hjertberg, "13 C CP-MAS NMR Study on Content and Mobility of Double Bonds in Poly(trimethylopropane trimethacrylate)," Macromolecules, 23(12), 3080-3087 (1990).
Hjertberg, 13 C CP MAS NMR Study on Content and Mobility of Double Bonds in Poly(trimethylopropane trimethacrylate), Macromolecules, 23(12), 3080 3087 (1990). *
Kanda et al., "Synthesis of polyamide supports for use in peptide synthesis and as peptide-resin conjugates for antibody production," Int. J. Peptide Protein Res., 38, 385-391 (1991).
Kanda et al., Synthesis of polyamide supports for use in peptide synthesis and as peptide resin conjugates for antibody production, Int. J. Peptide Protein Res., 38, 385 391 (1991). *
Kempe, Chiral Recognition, "Studies on chiral discrimination in enzymatic peptide synthesis and non-covalent molecular imprinting," 1-154 (1994).
Kempe, Chiral Recognition, Studies on chiral discrimination in enzymatic peptide synthesis and non covalent molecular imprinting, 1 154 (1994). *
Kolarz et al., "Porous copolymers of trimethylolpropane triacrylate and acrylonitrile", Makromol. Chem., 194, 1299-1306 (1993).
Kolarz et al., Porous copolymers of trimethylolpropane triacrylate and acrylonitrile , Makromol. Chem., 194, 1299 1306 (1993). *
Meldal et al., "Pega: A Flow Stable Polyethylene Glycol Dimethyl Acrylamide Copolymer for Solid Phase Synthesis," Tetrahedron Lett., 33(21), 3077-3080 (1992).
Meldal et al., Pega: A Flow Stable Polyethylene Glycol Dimethyl Acrylamide Copolymer for Solid Phase Synthesis, Tetrahedron Lett., 33(21), 3077 3080 (1992). *
Merrifield, "Solid Phase Peptide Synthesis. I. The Synthesis of a Tetrapeptide," J. Am. Chem. Soc., 85, 2149-2154 (1963).
Merrifield, Solid Phase Peptide Synthesis. I. The Synthesis of a Tetrapeptide, J. Am. Chem. Soc., 85, 2149 2154 (1963). *
NIH Grant No. GM 42722 (Abstract). *
NIH Grant No. GM 51628 (Abstract). *
Reinholdsson et al., "Preparation and properties of porous particles from trimethylolpropane trimethacrylate," Applied Macromolecular Chem. and Phys., 192, 113-132 (1991).
Reinholdsson et al., Preparation and properties of porous particles from trimethylolpropane trimethacrylate, Applied Macromolecular Chem. and Phys., 192, 113 132 (1991). *
Reinholdsson, "Poly(tri-methyl propane tri-methacrylate) particles with acid chloride functionality-a convinient entry to support materials for catalysis and chromatography," New types of functional composite particles bases on poly(tri-methylol propane tri-methacrylate), 1-23 (1991).
Reinholdsson, "Poly(tri-methylol propane tri-methacrylate) particles with phosphine functionality--a new type of support for metal phosphine complex catalysts," New Types of functional composite particles based on poly(tri-methylol propane tri-methacrylate), 1-23 (1991).
Reinholdsson, New types of functional composite particles based on poly ( tri methylol propane tri methacrylate ), 1 28 (1991). *
Reinholdsson, New types of functional composite particles based on poly(tri-methylol propane tri-methacrylate), 1-28 (1991).
Reinholdsson, Poly(tri methyl propane tri methacrylate) particles with acid chloride functionality a convinient entry to support materials for catalysis and chromatography, New types of functional composite particles bases on poly ( tri methylol propane tri methacrylate ), 1 23 (1991). *
Reinholdsson, Poly(tri methylol propane tri methacrylate) particles with phosphine functionality a new type of support for metal phosphine complex catalysts, New Types of functional composite particles based on poly ( tri methylol propane tri methacrylate ), 1 23 (1991). *
Renil et al., "Gel-Phase Peptide Synthesis on a New High-Capacity Tetraethyleneglycol eiacrylate-Crosslinked Polystyrene Support: Synthesis of Pardaxin 16-33," Tetrahedron, 50(22), 6681-6688 (1994).
Renil et al., Gel Phase Peptide Synthesis on a New High Capacity Tetraethyleneglycol eiacrylate Crosslinked Polystyrene Support: Synthesis of Pardaxin 16 33, Tetrahedron, 50(22), 6681 6688 (1994). *
Rosenberg, et al., "Macroporous Gels. 3. Copolymerization of Trimethylolpropane Trimethacrylate and Methacrylate in Toluene or Ethyl Acetate," Macromolecules, 20, 1522-1526 (1987).
Rosenberg, et al., Macroporous Gels. 3. Copolymerization of Trimethylolpropane Trimethacrylate and Methacrylate in Toluene or Ethyl Acetate, Macromolecules, 20, 1522 1526 (1987). *
Sarin et al., "Properties of Swollen Polymer Networks. Solvation and Swelling of Peptide-Containing Resins in Solid-Phase Peptide Synthesis," J. Am. Chem. Soc., 102, 5463-5470 (1980).
Sarin et al., Properties of Swollen Polymer Networks. Solvation and Swelling of Peptide Containing Resins in Solid Phase Peptide Synthesis, J. Am. Chem. Soc., 102, 5463 5470 (1980). *
Sawicki, "Phase Transfer Catalysts Polyethylene Glycols Immobilized onto Metal Oxide Surfaces," Tetrahedron Letters, 23(22), 2249-2252 (1983).
Sawicki, Phase Transfer Catalysts Polyethylene Glycols Immobilized onto Metal Oxide Surfaces, Tetrahedron Letters, 23(22), 2249 2252 (1983). *
Small et al., "Design and Application of a New Rigid Support for High Efficiency Continuous-flow Peptide Synthesis," J.C.S. Chem. Commun., No. 21, 1589-1696 (1989).
Small et al., Design and Application of a New Rigid Support for High Efficiency Continuous flow Peptide Synthesis, J.C.S. Chem. Commun., No. 21, 1589 1696 (1989). *
Stewart et al., "Polystyrene-Based Solid Phase Peptide Synthesis: The State of the Art," Innovation and Perspectives in Solid Phase Synthesis: Peptides, Polypeptides, and Oligonucleotides, Macro-organic and Catalysts, Ed.: R. Epton, SPCC UK Ltd., 1-9 (1990).
Stewart et al., Polystyrene Based Solid Phase Peptide Synthesis: The State of the Art, Innovation and Perspectives in Solid Phase Synthesis: Peptides, Polypeptides, and Oligonucleotides, Macro organic and Catalysts, Ed.: R. Epton, SPCC UK Ltd., 1 9 (1990). *
Zaplisky et al., "Preparation and applications of polyethylene glycol-polysytrene graft resin supports for solid-phase peptide synthesis," Reactive Polymers, 22, 243-258 (1994).
Zaplisky et al., "Preparation and Use of an Aminoethyl Polyethylene Glycol-Crosslinked Polystyrene Graft Resin Support for Solid-Phase Peptide Synthesis," Peptides: Structure and Function, Eds: V.J. Hruby et al., Proceedings of the 9th American Peptide Symposium, 257-260 (1985).
Zaplisky et al., Preparation and applications of polyethylene glycol polysytrene graft resin supports for solid phase peptide synthesis, Reactive Polymers, 22, 243 258 (1994). *
Zaplisky et al., Preparation and Use of an Aminoethyl Polyethylene Glycol Crosslinked Polystyrene Graft Resin Support for Solid Phase Peptide Synthesis, Peptides: Structure and Function, Eds: V.J. Hruby et al., Proceedings of the 9th American Peptide Symposium, 257 260 (1985). *

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* Cited by examiner, † Cited by third party
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US5910554A (en) * 1995-06-16 1999-06-08 Regents Of The University Of Minnesota Highly cross-linked polymeric supports
US6037014A (en) * 1997-11-06 2000-03-14 The Edgington Co. Coating composition
US6395822B1 (en) 1997-11-06 2002-05-28 Garry J. Edgington Coating composition
US20030114619A1 (en) * 2000-06-07 2003-06-19 Navin Suyal Photo-polymers and use thereof
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